BU2506FV-E2 Integrated Circuits (ICs) |
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Allicdata Part #: | BU2506FV-E2TR-ND |
Manufacturer Part#: |
BU2506FV-E2 |
Price: | $ 0.00 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | ROHM Semiconductor |
Short Description: | IC DAC 10BIT 8-CHAN SSOP20 |
More Detail: | 10 Bit Digital to Analog Converter 8 20-SSOP-B |
DataSheet: | BU2506FV-E2 Datasheet/PDF |
Quantity: | 1000 |
Reference Type: | -- |
Base Part Number: | BU250* |
Supplier Device Package: | 20-SSOP-B |
Package / Case: | 20-LSSOP (0.173", 4.40mm Width) |
Operating Temperature: | -30°C ~ 85°C |
Architecture: | R-2R |
INL/DNL (LSB): | ±3.5, ±1 |
Voltage - Supply, Digital: | 5V |
Voltage - Supply, Analog: | 5V |
Series: | -- |
Data Interface: | SPI |
Differential Output: | No |
Output Type: | Voltage - Buffered |
Settling Time: | 20µs |
Number of D/A Converters: | 8 |
Number of Bits: | 10 |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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BU2506FV-E2 Application Field and Working Principle
Data Acquisition - Digital to Analog (DAC) converters such as the BU2506FV-E2 are used to convert digital signals into analog signals. This type of converter is used in a variety of applications including digital audio, automotive, industrial, and medical. In some instances, it can even be used to generate analog signals for test and measurement purposes.
The BU2506FV-E2 is a 12-bit DAC converter, meaning that it can convert digital signals up to 12 bits in resolution. The converter can operate up to an input voltage of 10 Volts, and has a maximum output voltage of 10 Volts. It also has a high maximum conversion frequency of 10 MHz. These features make it ideal for applications that require high-precision analog signals.
Working Principle
DAC converters such as the BU2506FV-E2 work by taking in digital input signals and converting them into corresponding analog signals. The converter does this by using a combination of two processes. The first is by encoding the digital signals into binary-coded decimal (BCD) format. The second is by using pulse width modulation techniques to convert the BCD signals into analog signals.
The BCD encoding process is used to convert the binary digital input signals into BCD-formatted numbers. This is done by combining the binary signals into 8-bit BCD codes, which are then converted into 12-bit BCD codes. The 12-bit BCD codes are then used to control the pulse width modulation process.
The pulse width modulation process is used to convert the BCD codes into the analog signals. This is done by using a voltage controlled oscillator (VCO), which is used to create a number of pulses with different widths and shapes. Using these pulses, the converter is able to generate an analog signal that corresponds to the digital input signals.
Advantages & Limitations
The BU2506FV-E2 has a few advantages when compared to other DAC converters. For one, its high maximum conversion frequency of 10 MHz makes it ideal for applications that require high-precision analog signals. Additionally, its 12-bit resolution makes it capable of producing very accurate analog signals.
However, the BU2506FV-E2 also has some limitations. For example, its maximum output voltage of 10 Volts may not be sufficient for some applications. Additionally, it does not have built-in error correction, which can lead to inaccurate readings and output signals.
Conclusion
The BU2506FV-E2 is a 12-bit DAC converter that is used to convert digital signals into accurate analog signals. It does this by using a combination of BCD encoding and pulse width modulation processes. Although the converter is capable of providing accurate analog signals, it has some limitations such as its maximum output voltage and lack of error correction.
The specific data is subject to PDF, and the above content is for reference
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